Uploaded February 2018 | Updated September 2026, 1 week ago
In this video I discuss the neurotransmitter gamma-aminobutyric acid, or GABA. GABA is the primary inhibitory neurotransmitter in the human nervous system; its effects generally involve making neurons less likely to fire action potentials or release neurotransmitters. GABA acts at both ionotropic (GABAa) and metabotropic (GABAb) receptors, and its action is terminated by a transporter called the GABA transporter. Several drugs like alcohol and benzodiazepines cause increased GABA activity, which is associated with sedative effects.
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📚Bizarre: The Most Peculiar Cases of Human Behavior and What They Tell Us About How the Brain Works: amazon.com/Bizarre-Peculiar-Cases-Human-Behavior/dp/139980121X
TRANSCRIPT:
Welcome to 2 minute neuroscience, where I simplistically explain neuroscience topics in 2 minutes or less. In this installment I will discuss gamma-aminobutyric acid, or GABA.
Although GABA’s primary functions are as a neurotransmitter, it has the structure of an amino acid and thus is referred to as an amino acid neurotransmitter. It is synthesized from another amino acid neurotransmitter, glutamate, in a reaction catalyzed by the enzyme glutamic acid decarboxylase.
The function of GABA changes over the course of neural development, but in the mature brain it acts primarily as an inhibitory neurotransmitter; in other words when GABA interacts with the receptors of a neuron, it generally makes the neuron less likely to fire an action potential or release neurotransmitters.
There are two types of receptors GABA interacts with, GABAa and GABAb receptors. GABAa receptors are ionotropic receptors. When GABA binds to the GABAa receptor, it causes the opening of an associated ion channel that is permeable to the negatively charged ion chloride. When negative chloride ions flow into the neuron, they hyperpolarize the membrane potential of the neuron and make it less likely the neuron will fire an action potential. GABAb receptors are metabotropic (or g-protein coupled) receptors; when activated they frequently cause the opening of potassium channels. These channels allow positively charged potassium ions to flow out of the neuron, again making the neuron hyperpolarized and less likely to fire an action potential.
The actions of GABA are terminated by proteins called GABA transporters, which transport GABA from the synaptic cleft into neurons or glial cells where it is degraded primarily by mitochondrial enzymes.
Because GABA can reduce neural transmission, increased GABA activity can have sedative effects. Accordingly, a number of drugs that have such effects, like alcohol and benzodiazepines, increase activity at the GABA receptor.
REFERENCE:
Purves D, Augustine GJ, Fitzpatrick D, Hall WC, Lamantia AS, McNamara JO, White LE. Neuroscience. 4th ed. Sunderland, MA. Sinauer Associates; 2008.
In this video I discuss the neurotransmitter gamma-aminobutyric acid, or GABA. GABA is the primary inhibitory neurotransmitter in the human nervous system; its effects generally involve making neurons less likely to fire action potentials or release neurotransmitters. GABA acts at both ionotropic (GABAa) and metabotropic (GABAb) receptors, and its action is terminated by a transporter called the GABA transporter. Several drugs like alcohol and benzodiazepines cause increased GABA activity, which is associated with sedative effects.
đź§ Take your learning further with my free, self-paced Introduction to Neuroscience course featuring my videos, articles, and hundreds of quiz questions: neuroscientificallychallenged.com/course
If you're looking for accessible and entertaining ways to learn more about the brain, check out my books:
📚Your Brain, Explained: What Neuroscience Reveals About Your Brain and its Quirks: amazon.com/Your-Brain-Explained-Neuroscience-Reveals/dp/1473696569
📚Bizarre: The Most Peculiar Cases of Human Behavior and What They Tell Us About How the Brain Works: amazon.com/Bizarre-Peculiar-Cases-Human-Behavior/dp/139980121X
TRANSCRIPT:
Welcome to 2 minute neuroscience, where I simplistically explain neuroscience topics in 2 minutes or less. In this installment I will discuss gamma-aminobutyric acid, or GABA.
Although GABA’s primary functions are as a neurotransmitter, it has the structure of an amino acid and thus is referred to as an amino acid neurotransmitter. It is synthesized from another amino acid neurotransmitter, glutamate, in a reaction catalyzed by the enzyme glutamic acid decarboxylase.
The function of GABA changes over the course of neural development, but in the mature brain it acts primarily as an inhibitory neurotransmitter; in other words when GABA interacts with the receptors of a neuron, it generally makes the neuron less likely to fire an action potential or release neurotransmitters.
There are two types of receptors GABA interacts with, GABAa and GABAb receptors. GABAa receptors are ionotropic receptors. When GABA binds to the GABAa receptor, it causes the opening of an associated ion channel that is permeable to the negatively charged ion chloride. When negative chloride ions flow into the neuron, they hyperpolarize the membrane potential of the neuron and make it less likely the neuron will fire an action potential. GABAb receptors are metabotropic (or g-protein coupled) receptors; when activated they frequently cause the opening of potassium channels. These channels allow positively charged potassium ions to flow out of the neuron, again making the neuron hyperpolarized and less likely to fire an action potential.
The actions of GABA are terminated by proteins called GABA transporters, which transport GABA from the synaptic cleft into neurons or glial cells where it is degraded primarily by mitochondrial enzymes.
Because GABA can reduce neural transmission, increased GABA activity can have sedative effects. Accordingly, a number of drugs that have such effects, like alcohol and benzodiazepines, increase activity at the GABA receptor.
REFERENCE:
Purves D, Augustine GJ, Fitzpatrick D, Hall WC, Lamantia AS, McNamara JO, White LE. Neuroscience. 4th ed. Sunderland, MA. Sinauer Associates; 2008.





![2-Minute Neuroscience: Color Blindness
Color blindness is a condition in which a person has difficulty seeing or distinguishing certain colors. In this video, I explain the biological mechanisms underlying color blindness and how it is inherited.
đź§ Take your learning further with my free, self-paced Introduction to Neuroscience course featuring my videos, articles, and hundreds of quiz questions: https://neuroscientificallychallenged.com/course
If youre looking for accessible and entertaining ways to learn more about the brain, check out my books:
📚Your Brain, Explained: What Neuroscience Reveals About Your Brain and its Quirks: https://www.amazon.com/Your-Brain-Explained-Neuroscience-Reveals/dp/1473696569/
📚Bizarre: The Most Peculiar Cases of Human Behavior and What They Tell Us About How the Brain Works: https://www.amazon.com/Bizarre-Peculiar-Cases-Human-Behavior/dp/139980121X/
TRANSCRIPT
Color blindness is a condition in which a person has difficulty seeing or distinguishing certain colors. It typically does not involve a complete loss of color vision. Color blindness can be due to various causes, but the most common forms are inherited and caused by genetic differences that affect the function of cone photoreceptors in the retina. The most common type of color blindness is red-green color blindness, where individuals have difficulty distinguishing red and green hues.
Normal color vision relies on three types of cones—each sensitive to different ranges of wavelengths corresponding roughly to blue, green, and red. Some individuals have all three cones but have abnormalities in cone sensitivity that cause irregularities in color perception; this is referred to as anomalous trichromacy and is the mildest form of color blindness. When only two of the three cone cells are functional, it results in a type of color blindness known as dichromacy. The rarest and most severe form of color blindness is called monochromacy and involves a complete loss of color vision.
Red-green color blindness is much more common in males because the mutations that typically cause it are found on the x chromosome. If females possess such a mutation on one x chromosome, it is likely to be balanced out by a functional gene on the other x chromosome. Because males only have one x chromosome, a mutation is more likely to result in color blindness.
Color blindness can be diagnosed using color vision tests, and although it cannot be cured, various technologies like color-enhancing lenses can help in some situations.
REFERENCES
Breedlove SM, Watson NV. Behavioral Neuroscience. 10th ed. New York (NY): Oxford University Press; 2023.
Carroll J, Conway BR. Color vision. Handb Clin Neurol. 2021;178:131-153. doi: 10.1016/B978-0-12-821377-3.00005-2. PMID: 33832674.
Meister M, Tessier‑Lavigne M. Low‑Level Visual Processing: The Retina. In: Kandel ER, Koester JD, Mack SH, Siegelbaum SA, editors. Principles of Neural Science. 6th ed. New York (NY): McGraw‑Hill; 2021.
Naifeh N, Kaufman EJ. Color Vision. 2022 Oct 31. In: StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing; 2025 Jan–. PMID: 29261952.
Simunovic MP. Colour vision deficiency. Eye (Lond). 2010 May;24(5):747-55. doi: 10.1038/eye.2009.251. Epub 2009 Nov 20. PMID: 19927164.
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